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Comparative life cycle assessment of the ground source heat pump vs air source heat pump

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  • Violante, Anna Carmela
  • Donato, Filippo
  • Guidi, Giambattista
  • Proposito, Marco

Abstract

In view of the decarbonisation of the thermal sector, the use of ground source heat pumps (GSHP) plays a key role. The geothermal system coupled with heat pumps, is the most energy efficient and environmentally sustainable heating and cooling system because the ground temperature is constant all year round, unlike traditional air-source heat pumps (ASHP). A comparative life cycle assessment of a pilot GSHP system, operating in the ENEA Casaccia Research Centre (Italy), and a conventional ASHP was performed. In accordance with ISO standard, the impacts on the four damage criteria were evaluated for each phase of the entire life cycle (production, installation, operation and end-of-life), using the SimaPro 9.0 software. The GSHP system has significant impacts compared to the other ASHP system components during manufacturing and installation. In contrast, slightly higher impacts of the ASHP system are recorded during the operational phase. It should be considered that the geothermal probe circuit has a useful life of 100 years, which allows for multiple operational life cycles of the geothermal plant. Therefore, the paper highlights that the GSHP system, as a whole, is more energy efficient and has a lower long-term environmental impact, compared to a traditional air conditioning system.

Suggested Citation

  • Violante, Anna Carmela & Donato, Filippo & Guidi, Giambattista & Proposito, Marco, 2022. "Comparative life cycle assessment of the ground source heat pump vs air source heat pump," Renewable Energy, Elsevier, vol. 188(C), pages 1029-1037.
  • Handle: RePEc:eee:renene:v:188:y:2022:i:c:p:1029-1037
    DOI: 10.1016/j.renene.2022.02.075
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    References listed on IDEAS

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    1. Ida Franzén & Linnéa Nedar & Maria Andersson, 2019. "Environmental Comparison of Energy Solutions for Heating and Cooling," Sustainability, MDPI, vol. 11(24), pages 1-17, December.
    2. Greening, Benjamin & Azapagic, Adisa, 2012. "Domestic heat pumps: Life cycle environmental impacts and potential implications for the UK," Energy, Elsevier, vol. 39(1), pages 205-217.
    3. Genchi, Yutaka & Kikegawa, Yukihiro & Inaba, Atsushi, 2002. "CO2 payback-time assessment of a regional-scale heating and cooling system using a ground source heat-pump in a high energy-consumption area in Tokyo," Applied Energy, Elsevier, vol. 71(3), pages 147-160, March.
    4. Blum, Philipp & Campillo, Gisela & Münch, Wolfram & Kölbel, Thomas, 2010. "CO2 savings of ground source heat pump systems – A regional analysis," Renewable Energy, Elsevier, vol. 35(1), pages 122-127.
    5. Aresti, Lazaros & Christodoulides, Paul & Florides, Georgios A., 2021. "An investigation on the environmental impact of various Ground Heat Exchangers configurations," Renewable Energy, Elsevier, vol. 171(C), pages 592-605.
    6. Kljajić, Miroslav V. & Anđelković, Aleksandar S. & Hasik, Vaclav & Munćan, Vladimir M. & Bilec, Melissa, 2020. "Shallow geothermal energy integration in district heating system: An example from Serbia," Renewable Energy, Elsevier, vol. 147(P2), pages 2791-2800.
    7. Violante, Anna Carmela & Proposito, Marco & Donato, Filippo & Guidi, Giambattista & Falconi, Luca Maria, 2021. "Preliminary study of a closed loop vertical ground source heat pump system for an experimental pilot plant (Rome, Italy)," Renewable Energy, Elsevier, vol. 176(C), pages 415-422.
    8. Saner, Dominik & Juraske, Ronnie & Kübert, Markus & Blum, Philipp & Hellweg, Stefanie & Bayer, Peter, 2010. "Is it only CO2 that matters? A life cycle perspective on shallow geothermal systems," Renewable and Sustainable Energy Reviews, Elsevier, vol. 14(7), pages 1798-1813, September.
    9. Bayer, Peter & Saner, Dominik & Bolay, Stephan & Rybach, Ladislaus & Blum, Philipp, 2012. "Greenhouse gas emission savings of ground source heat pump systems in Europe: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 16(2), pages 1256-1267.
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